Identifiability Conditions for Multi-channel Blind Deconvolution with Short Filters
This work considers the multi-channel blind deconvolution problem under the assumption that the channels are short. First, we investigate the ill-posedness issues inherent to blind deconvolution problems and sufficient and necessary conditions on the channels that guarantee well-posedness are derive...
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Zusammenfassung: | This work considers the multi-channel blind deconvolution problem under the
assumption that the channels are short. First, we investigate the ill-posedness
issues inherent to blind deconvolution problems and sufficient and necessary
conditions on the channels that guarantee well-posedness are derived. Following
previous work on blind deconvolution, the problem is then reformulated as a
low-rank matrix recovery problem and solved by nuclear norm minimization.
Numerical experiments show the effectiveness of this algorithm under a certain
generative model for the input signal and the channels, both in the noiseless
and in the noisy case. |
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DOI: | 10.48550/arxiv.1902.09151 |